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Optimization design of Savonius diffuser blade with moving deflector for hydrokınetıc cross flow turbıne rotor

机译:带有横流式水力涡轮转子的偏转器的Savonius扩散器叶片的优化设计

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摘要

The conventional Savonius turbine is a good concept for small size wind-renewable energy systems; unfortunately always it has low efficiency. Inspired from the Savonius Blade, this research project designed the diffuser form as compartment between S blade and Tandem Blade of Savonius to produce “jet flow” through narrow gap on the advancing blade in order to rotate more powerful the returning blade. The reason to change the air (wind) by using water as working fluid is to increase the body force (BF) which works on the blade due to increasing the density of fluid. The new model of Hydrokinetic Cross Flow Vertical Axis Turbine (CROSSVAT) is developed from Savonius S rotor with using Savonius Diffuser Blade (SDB) and moving deflector (guide blade). The function of SDB is to increase the velocity ratio on narrow gap (Rcv) also the drag force on surface of blades. Research method used the CFD simulation and Response Surface Method (RSM) to optimize the geometry of tandem blade and moving deflector (the moving guide blade). This study results two model CROSSVAT rotor using Tangential Deflector (model 1) and Radial Deflector (model 2).
机译:常规的Savonius涡轮机是小型风力可再生能源系统的一个很好的概念。不幸的是,它总是效率低下。受Savonius叶片的启发,该研究项目将扩散器形式设计为Savonius的S叶片和Tandem叶片之间的隔室,以通过前进叶片上的狭窄间隙产生“喷射流”,从而使返回叶片旋转得更强劲。通过使用水作为工作流体来改变空气(风)的原因是,由于流体密度的增加,增加了作用在叶片上的体力(BF)。新型流体动力学横流垂直轴涡轮机(CROSSVAT)是由Savonius S转子使用Savonius扩散器叶片(SDB)和移动导流板(导向叶片)开发而成的。 SDB的功能是增加窄间隙(Rcv)上的速度比以及叶片表面上的阻力。研究方法使用CFD模拟和响应曲面方法(RSM)来优化串联叶片和移动导流板(移动导向叶片)的几何形状。这项研究得出了两个使用切向偏转器(模型1)和径向偏转器(模型2)的CROSSVAT模型转子。

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